Energy System and Thermoeconomic Analysis of Combined Heat and Power High Temperature Proton Exchange Membrane Fuel Cell Systems for Light Commercial Buildings

W. Colella, S. Pilli
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引用次数: 8

Abstract

The United States (U.S.) Department of Energy (DOE)’s Pacific Northwest National Laboratory (PNNL) is spearheading a program with industry to deploy and independently monitor five kilowatt-electric (kWe) combined heat and power (CHP) fuel cell systems (FCSs) in light commercial buildings. This publication discusses results from PNNL’s research efforts to independently evaluate manufacturer-stated engineering, economic, and environmental performance of these CHP FCSs at installation sites. The analysis was done by developing parameters for economic comparison of CHP installations. Key thermodynamic terms are first defined, followed by an economic analysis using both a standard accounting approach and a management accounting approach. Key economic and environmental performance parameters are evaluated, including (1) the average per unit cost of the CHP FCSs per unit of power, (2) the average per unit cost of the CHP FCSs per unit of energy, (3) the change in greenhouse gas (GHG) and air pollution emissions with a switch from conventional power plants and furnaces to CHP FCSs; (4) the change in GHG mitigation costs from the switch; and (5) the change in human health costs related to air pollution. From the power perspective, the average per unit cost per unit of electrical power is estimated to span amore » range from $15–19,000/ kilowatt-electric (kWe) (depending on site-specific changes in installation, fuel, and other costs), while the average per unit cost of electrical and heat recovery power varies between $7,000 and $9,000/kW. From the energy perspective, the average per unit cost per unit of electrical energy ranges from $0.38 to $0.46/kilowatt-hour-electric (kWhe), while the average per unit cost per unit of electrical and heat recovery energy varies from $0.18 to $0.23/kWh. These values are calculated from engineering and economic performance data provided by the manufacturer (not independently measured data). The GHG emissions were estimated to decrease by one-third by shifting from a conventional energy system to a CHP FCS system. The GHG mitigation costs were also proportional to the changes in the GHG gas emissions. Human health costs were estimated to decrease significantly with a switch from a conventional system to a CHP FCS system.« less
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轻型商业建筑热电联产高温质子交换膜燃料电池系统的能量系统及热经济分析
美国(U.S.)美国能源部(DOE)的西北太平洋国家实验室(PNNL)正在与工业界一起开展一项计划,在轻型商业建筑中部署和独立监测5千瓦电(kWe)热电联产(CHP)燃料电池系统(FCSs)。本出版物讨论了PNNL的研究成果,以独立评估制造商在安装地点声明的这些热电联产燃料电池的工程、经济和环境性能。分析是通过为热电联产装置的经济比较制定参数来完成的。首先定义关键热力学术语,然后使用标准会计方法和管理会计方法进行经济分析。主要的经济和环境性能参数进行了评估,包括(1)每单位功率的热电联产燃料电池的平均单位成本,(2)每单位能量的热电联产燃料电池的平均单位成本,(3)温室气体(GHG)和空气污染排放的变化从传统发电厂和熔炉切换到热电联产燃料电池;(4)转换后温室气体减缓成本的变化;(5)与空气污染有关的人类健康成本的变化。从电力的角度来看,每单位电力的平均每单位成本估计在每千瓦电15 - 19 000美元之间(取决于具体地点安装、燃料和其他费用的变化),而电力和热回收电力的平均每单位成本在每千瓦7 000至9 000美元之间。从能源角度看,每单位电能的平均成本为0.38美元至0.46美元/千瓦时电,而每单位电能和热回收能的平均成本为0.18美元至0.23美元/千瓦时。这些值是根据制造商提供的工程和经济性能数据计算出来的(不是独立测量的数据)。据估计,从传统能源系统转向热电联产FCS系统,温室气体排放量将减少三分之一。温室气体缓解成本也与温室气体排放的变化成正比。据估计,从传统系统切换到热电联产FCS系统后,人类健康成本将显著降低。«少
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期刊介绍: The Journal of Fuel Cell Science and Technology publishes peer-reviewed archival scholarly articles, Research Papers, Technical Briefs, and feature articles on all aspects of the science, engineering, and manufacturing of fuel cells of all types. Specific areas of importance include, but are not limited to: development of constituent materials, joining, bonding, connecting, interface/interphase regions, and seals, cell design, processing and manufacturing, multi-scale modeling, combined and coupled behavior, aging, durability and damage tolerance, reliability, availability, stack design, processing and manufacturing, system design and manufacturing, power electronics, optimization and control, fuel cell applications, and fuels and infrastructure.
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